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English
صفحه اصلی
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شانزدهمین کنفرانس بین المللی فناوری اطلاعات و دانش
Multi-Modal Longitudinal Tooth Labeling with Temporal Graph–Transformer Integration
نویسندگان :
Maral Mirza mohammadi
1
Mahdi Tarom
2
1- علم
2- مالک
کلمات کلیدی :
Tooth segmentation،longitudinal labeling،; graph neural networks; temporal refinement.
چکیده :
Abstract— Accurate and temporally consistent tooth labeling is essential for longitudinal dental analysis and treatment planning. This paper presents a unified framework for longitudinal 3D tooth labeling that integrates cone-beam computed tomography (CBCT) and intraoral scans (IOS) via a hybrid temporal Graph Neural Network–3D Transformer architecture. The proposed pipeline performs segmentation, tooth ID assignment, and cross-timepoint label propagation, followed by a temporal refinement module that enforces label consistency while preserving spatial accuracy. Evaluations on two public multi-timepoint datasets—STS-3D-Tooth and Teeth3DS+—achieved state-of-the-art performance with a Dice score of 95.5%, IoU of 91.0%, ID accuracy of 98.3%, and temporal label consistency (TLC) of 93.4%. Qualitative results further confirm robust handling of missing and erupting teeth with stable identity tracking across sessions. The proposed multimodal hybrid framework provides a clinically reliable and computationally efficient solution for automated longitudinal dental imaging.
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